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29 - Science of Deep Learning with Vikrant Varma

AXRP - the AI X-risk Research Podcast

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Understanding Propositions and CCS Loss in Deep Learning Models

The chapter delves into the theory of the CCS method in deep learning, exploring the relationship between CCS objective and the independence from the propositional content of sentences. It discusses how neural networks represent propositions, the challenges in extracting ground truth beliefs, and the complexities arising from entanglements in model predictions. The conversation also covers the implications of model representations, the impact of unexpected words in text on language models, and the behavior of models with abnormal text patterns.

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